From Efimov Physics to the Bose Polaron using Gaussian States
Arthur Christianen, J. Ignacio Cirac, Richard Schmidt

TL;DR
This paper develops a Gaussian state variational approach to study Efimov physics in a Bose polaron system, revealing how Efimov correlations influence many-body bound states and polaron stability.
Contribution
It introduces a novel Gaussian state method to incorporate Efimov effects in many-body Bose polaron models, highlighting the impact on polaron stability and resonance shifts.
Findings
Efimov effect causes cooperative binding and metastable polaron states.
Polaron becomes unstable at a shifted Efimov resonance due to many-body effects.
Enhanced chemical recombination signals can be observed experimentally.
Abstract
Since the Efimov effect was introduced in 1970, a detailed theoretical understanding of Efimov physics has been developed in the few-body context. However, it has proven to be challenging to describe the role Efimov-type correlations play in many-body systems such as quenched or collapsing Bose-Einstein condensates (BECs). To study the impact the Efimov effect can have in such scenarios, we consider a light impurity immersed in a weakly interacting BEC, forming a Bose polaron. In this case, the higher-order correlations are localized around the impurity, making it more feasible to develop a theoretical description. Specifically, we employ a Gaussian state variational Ansatz in the reference frame of the impurity, capable of both capturing the Efimov effect and the formation of the polaron cloud. We find that the Efimov effect leads to a cooperative binding of bosons to the impurity and…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Strong Light-Matter Interactions · Physics of Superconductivity and Magnetism
